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BONUS Algorithm for Large Scale Stochastic Nonlinear Programming Problems

53,49 €*

Sofort verfügbar, Lieferzeit: 1-3 Tage

Produktnummer: 1810cd1bbc61d04827a866ebc1d2a6ef16
Autor: David, Amy Diwekar, Urmila
Themengebiete: BONUS algorithm SNLP Stochastic Programming power systems sensor placement water management
Veröffentlichungsdatum: 06.03.2015
EAN: 9781493922819
Sprache: Englisch
Seitenzahl: 146
Produktart: Kartoniert / Broschiert
Verlag: Springer US
Produktinformationen "BONUS Algorithm for Large Scale Stochastic Nonlinear Programming Problems"
This book presents the details of the BONUS algorithm and its real world applications in areas like sensor placement in large scale drinking water networks, sensor placement in advanced power systems, water management in power systems, and capacity expansion of energy systems. A generalized method for stochastic nonlinear programming based on a sampling based approach for uncertainty analysis and statistical reweighting to obtain probability information is demonstrated in this book. Stochastic optimization problems are difficult to solve since they involve dealing with optimization and uncertainty loops. There are two fundamental approaches used to solve such problems. The first being the decomposition techniques and the second method identifies problem specific structures and transforms the problem into a deterministic nonlinear programming problem. These techniques have significant limitations on either the objective function type or the underlying distributions for the uncertain variables. Moreover, these methods assume that there are a small number of scenarios to be evaluated for calculation of the probabilistic objective function and constraints. This book begins to tackle these issues by describing a generalized method for stochastic nonlinear programming problems. This title is best suited for practitioners, researchers and students in engineering, operations research, and management science who desire a complete understanding of the BONUS algorithm and its applications to the real world.

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